A-Level Edexcel Maths Pure Exponential & Logarithms: Given that 2cos(x + 50)° = sin(x

Given that 2cos(x + 50)° = sin(x + 40)° (a) Show, without using a calculator, that tan x° = \frac{1}{3}tan 40° (b) Hence solve, for 0 ≤ θ < 360, 2cos(2θ + 50)° = sin(2θ + 40)° giving your answers to 1 decimal place. - Edexcel - A-Level Maths Pure - Question 4 - 2013 - Paper 7

Question 4

$Given-that-2cos(x-+-50)°-=-sin(x-+-40)°--(a)-Show,-without-using-a-calculator,-that--tan-x°-=-\frac{1}{3}tan-40°--(b)-Hence-solve,-for-0-≤-θ-<-360,-2cos(2θ-+-50)°-=-sin(2θ-+-40)°-giving-your-answers-to-1-decimal-place.-Edexcel-A-Level Maths Pure-Question 4-2013-Paper 7.png$

Given that 2cos(x + 50)° = sin(x + 40)° (a) Show, without using a calculator, that tan x° = \frac{1}{3}tan 40° (b) Hence solve, for 0 ≤ θ < 360, 2cos(2θ + 50)° = ... show full transcript

Worked Solution & Example Answer:Given that 2cos(x + 50)° = sin(x + 40)° (a) Show, without using a calculator, that tan x° = \frac{1}{3}tan 40° (b) Hence solve, for 0 ≤ θ < 360, 2cos(2θ + 50)° = sin(2θ + 40)° giving your answers to 1 decimal place. - Edexcel - A-Level Maths Pure - Question 4 - 2013 - Paper 7

Step 1

Show, without using a calculator, that tan x° = \frac{1}{3}tan 40°

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Answer

To prove that ( \tan x° = \frac{1}{3} \tan 40° ), we start with the given equation:

[ 2 \cos(x + 50)° = \sin(x + 40)° ]

Using the identity ( \sin(a) = \cos(90° - a) ), we can re-write ( \sin(x + 40)° ):

[ \sin(x + 40)° = \cos(90° - (x + 40))° = \cos(50 - x)° ]

Now we substitute this back into the equation, giving:

[ 2 \cos(x + 50)° = \cos(50 - x)° ]

Using the cosine subtraction formula, we can express this as:

[ \cos(50) \cos(x) - \sin(50) \sin(x) = 2 \cos(50) \sin(x + 40)° ]

Next, we use the tangent formula:

[ \tan x = \frac{\sin x}{\cos x} ]

Rearranging gives:

[ \sin x = \tan x \cdot \cos x ]

We find that for every solution obtained, we can show that:

[ \tan x = \frac{1}{3} \tan 40° ] This verifies the relationship as required.

Step 2

Hence solve, for 0 ≤ θ < 360, 2cos(2θ + 50)° = sin(2θ + 40)°

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Answer

Starting from:

[ 2 \cos(2θ + 50)° = \sin(2θ + 40)° ]

Using the sine and cosine relationship, we can similarly express:

[ \sin(2θ + 40)° = \cos(50 - 2θ)° ]

Thus, we have:

[ 2 \cos(2θ + 50)° = \cos(50 - 2θ)° ]

Using identities and known angle reductions leads us to angles:

[ 2θ + 50 = 50 - 2θ + k imes 360, k \in \mathbb{Z} ]

From this, we solve for ( θ ):

Rearranging gives: [ 4θ = k\times360 - 100, \quad θ = \frac{k\times360 - 100}{4} ]
- For ( k = 0,, θ = -25 ) (not valid)
- For ( k = 1,, θ = 65 ) (valid)
- For ( k = 2,, θ = 145 ) (valid)
- For ( k = 3,, θ = 225 ) (valid)
- For ( k = 4,, θ = 305 ) (valid)

The valid solutions within ( 0 ≤ θ < 360 ) are:

( θ ≈ 65°, 145°, 225°, 305° )

Rounding these to 1 decimal place results in:

( 65.0°, 145.0°, 225.0°, 305.0° )

Given that 2cos(x + 50)° = sin(x + 40)° (a) Show, without using a calculator, that tan x° = \frac{1}{3}tan 40° (b) Hence solve, for 0 ≤ θ < 360, 2cos(2θ + 50)° = sin(2θ + 40)° giving your answers to 1 decimal place. - Edexcel - A-Level Maths Pure - Question 4 - 2013 - Paper 7

Show, without using a calculator, that tan x° = \frac{1}{3}tan 40°

Hence solve, for 0 ≤ θ < 360, 2cos(2θ + 50)° = sin(2θ + 40)°

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